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Background: Managing blood glucose levels in Type 1 Diabetes Mellitus (T1DM) is essential to prevent complications. Traditional insulin delivery methods often require significant patient involvement, limiting automation. Reinforcement Learning (RL)-based controllers offer a promising approach for improving automated insulin administration.
Methods: We propose a Dual Proximal Policy Optimization (Dual PPO) controller for personalized insulin delivery in a hybrid closed-loop system. The controller optimizes patient-specific insulin bounds through a grid search on pre-trained models to manage both hyperglycemia and hypoglycemia. A safe-control mechanism prevents insulin administration when glucose levels drop below a predefined threshold. The system was evaluated on 10 in silico adult patients using the UVA/Padova simulator, with five-day randomized meal scenarios.
Results: The Dual PPO controller significantly improved Time in Range (TIR) (69.30% ±1.61) compared to a single PPO model (61.69% ±1.54). The system effectively reduced severe hyperglycemia while maintaining a low incidence of severe hypoglycemia. Unlike conventional open-loop methods such as Basal-Bolus (BBC) and Proportional-Integral-Derivative (PIDC) controllers, our system requires minimal patient interaction, eliminating the need for carbohydrate estimation.
Conclusions: The Dual PPO controller enhances personalized insulin delivery in T1DM, improving glycemic control while reducing patient burden. This approach advances precision medicine in diabetes management, with potential for future real-world applications.
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http://dx.doi.org/10.1016/j.compbiomed.2025.110147 | DOI Listing |
BMC Plant Biol
August 2025
Pomology Department, Faculty of Agriculture, Cairo University, PO box 12613, Giza, Egypt.
Background: Mango (Mangifera indica L.) is a globally important fruit crop, but its sensitivity to salt stress poses a serious threat to its sustainable cultivation. Salt stress impairs mango growth through osmotic imbalance, ion toxicity, oxidative damage, and reduced nutrient uptake.
View Article and Find Full Text PDFPolymers (Basel)
August 2025
Nanotechnology and Advanced Materials Central Lab., Regional Center for Food and Feed, Agricultural Research Center, Giza 12619, Egypt.
Cucumber mosaic virus (CMV) is a destructive viral pathogen of vegetables, fruits, grains, and ornamentals across the globe. This study investigated the comparative antiviral efficacy of chitosan-salicylic acid nanocomposite (Ch/SA NC) and salicylic acid (SA) against CMV in cucumber plants. Transmission electron microscopy (TEM) analyses revealed that Ch/SA NCs can aggregate on the viral coat protein surface, suggesting direct nanoparticle-virus interaction.
View Article and Find Full Text PDFmBio
August 2025
State Key Laboratory of Agricultural and Forestry Biosecurity, Fujian Agriculture and Forestry University, Fuzhou, Fujian, China.
Phloem-inhabiting unculturable bacterial pathogens are persistently transmitted by insect vectors. However, how they evade insect immune responses to ensure persistent transmission remains unknown. The important melanization immune response in insects is triggered by cleavage of prophenoloxidase (PPO) into active phenoloxidase (PO) via clip-domain serine proteases (CLIPs).
View Article and Find Full Text PDFAntonie Van Leeuwenhoek
August 2025
Botany and Microbiology Department, Faculty of Science, Al-Azhar University, Nasr City, Cairo, 11884, Egypt.
Alternaria solani leaf spot disease (ASLS) poses a serious threat to global crop production, including peppers, resulting in notable economic losses. Bio-nanotechnology offers promising solutions for combating plant pathogens by promoting plant defenses and inhibiting pathogen growth. This study explores the effectiveness of copper oxide nanoparticles (CNPs) and copper phosphite (MAXIFOS CU®) in controlling A.
View Article and Find Full Text PDFJ Agric Food Chem
August 2025
State Key Laboratory of Green Pesticide, Key Laboratory of Green Pesticide and Agricultural Bioengineering, Ministry of Education, Guizhou University, Guiyang 550025, China.
4-Hydroxyphenylpyruvate dioxygenase (HPPD) and protoporphyrinogen oxidase (PPO) are recognized as pivotal targets for the development of environmentally friendly herbicides. In this work, a series of pyrazole derivatives containing a diphenyl ether moiety were designed and synthesized as dual-targeted HPPD/PPO inhibitors using pharmacophore merging and linking design strategies. The bioassays demonstrated that compound exhibited the best inhibitory activity against both HPPD (HPPD) and PPO (PPO) with the IC values of 0.
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